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  A detailed mechanism of degradation behaviour of biodegradable as-ECAPed Zn–0.8Mg–0.2Sr with emphasis on localized corrosion attack

Pinc, J., Školáková, A., Hybášek, V., Msallamová, Š., Veřtát, P., Ashcheulov, P., et al. (2023). A detailed mechanism of degradation behaviour of biodegradable as-ECAPed Zn–0.8Mg–0.2Sr with emphasis on localized corrosion attack. Bioactive Materials, 27, 447-460. doi:10.1016/j.bioactmat.2023.04.012.

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1-s2.0-S2452199X23001305-main.pdf (Publisher version), 14MB
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 Creators:
Pinc, Jan1, Author
Školáková, Andrea1, Author
Hybášek, Vojtěch2, Author
Msallamová, Šárka2, Author
Veřtát, Petr1, Author
Ashcheulov, Petr1, Author
Vondráček, Martin1, Author
Duchoň, Jan1, Author
McCarroll, Ingrid3, Author           
Hývl, Matěj1, Author
Banerjee, Swarnendu1, Author
Drahokoupil, Jan1, Author
Kubásek, Jiří2, Author
Vojtěch, Dalibor2, Author
Čapek, Jaroslav1, Author
Affiliations:
1Institute of Physics of the Czech Academy of Sciences, Na Slovance 1999/2, Prague 8, 182 21, Czech Republic, ou_persistent22              
2University of Chemistry and Technology, Faculty of Chemical Technology, Department of Metals and Corrosion Engineering, Technická 5, 166 28, Praha 6 – Dejvice, Czech Republic, ou_persistent22              
3Atom Probe Tomography, Microstructure Physics and Alloy Design, Max-Planck-Institut für Eisenforschung GmbH, Max Planck Society, ou_1863384              

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Free keywords: Biodegradable metals, Zinc-based alloy, Characterization, Mechanism, ECAP
 Abstract: In this study, advanced techniques such as atom probe tomography, atomic force microscopy, X-ray photoelectron spectroscopy, and electrochemical impedance spectroscopy were used to determine the corrosion mechanism of the as-ECAPed Zn-0.8Mg-0.2Sr alloy. The influence of microstructural and surface features on the corrosion mechanism was investigated. Despite its significance, the surface composition before exposure is often neglected by the scientific community. The analyses revealed the formation of thin ZnO, MgO, and MgCO3 layers on the surface of the material before exposure. These layers participated in the formation of corrosion products, leading to the predominant occurrence of hydrozincite. In addition, the layers possessed different resistance to the environment, resulting in localized corrosion attacks. The segregation of Mg on the Zn grain boundaries with lower potential compared with the Zn-matrix was revealed by atom probe tomography and atomic force microscopy. The degradation process was initiated by the activity of micro-galvanic cells, specifically Zn – Mg2Zn11/SrZn13. This process led to the activity of the crevice corrosion mechanism and subsequent attack to a depth of 250 μm. The corrosion rate of the alloy determined by the weight loss method was 0.36 mm·a−1. Based on this detailed study, the degradation mechanism of the Zn-0.8Mg-0.2Sr alloy is proposed.

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Language(s): eng - English
 Dates: 2023-09
 Publication Status: Issued
 Pages: -
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 Identifiers: DOI: 10.1016/j.bioactmat.2023.04.012
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Title: Bioactive Materials
  Abbreviation : Bioact. Mater.
Source Genre: Journal
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Publ. Info: Netherlands : KeAi Communications Co.
Pages: - Volume / Issue: 27 Sequence Number: - Start / End Page: 447 - 460 Identifier: ISBN: 2452-199X
CoNE: https://pure.mpg.de/cone/journals/resource/2452-199X
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